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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >The structure-mechanical relationship of palm vascular tissue
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The structure-mechanical relationship of palm vascular tissue

机译:掌脉组织的结构力学关系

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The structure mechanical relationship of palm sheath is studied with numerical and experimental methods. The cellular structure of the vascular tissue is rebuilt with an image-based reconstruction method and used to create finite element models. The validity of the models is firstly verified with the results from the tensile tests. Then, the cell walls inside each of the specific regions (fiber cap, vessel, xylem, etc.) are randomly removed to obtain virtually imperfect structures. By comparing the magnitudes of performance degradation in the different imperfect structures, the influences of each region on the overall mechanical performances of the vascular tissue are discussed. The longitudinal stiffness and yield strength are sensitive to the defects in the vessel regions. While in the transverse directions (including the radial and tangential directions), the parenchymatous tissue determines the mechanical properties of the vascular tissue. Moreover, the hydraulic, dynamic response and energy absorption behavior of the vascular tissue are numerically explored. The flexibility of natural palm tissue enhances its impact resistance. Under the quasi-static compression, the cell walls connecting the fiber cap and the vessel dissipate more energy. The dominant role of the fiber cap in the plastic energy dissipation under high-speed impact is observed. And the radially-arranged fiber cap also allows the palm tissue to improve its tangential mechanical performances under hydraulic pressure. (C) 2014 Elsevier Ltd. All rights reserved.
机译:通过数值和实验方法研究了掌鞘的结构力学关系。使用基于图像的重建方法重建血管组织的细胞结构,并用于创建有限元模型。首先用拉伸试验的结果验证了模型的有效性。然后,将每个特定区域(纤维帽,血管,木质部等)内部的细胞壁随机除去,以获得实际上不完美的结构。通过比较在不同的不完美结构中性能下降的幅度,讨论了每个区域对血管组织整体机械性能的影响。纵向刚度和屈服强度对血管区域中的缺陷敏感。而在横向(包括径向和切向)上,薄壁组织决定了血管组织的机械性能。此外,数值研究了血管组织的水力,动力响应和能量吸收行为。天然棕榈组织的柔韧性增强了其抗冲击性。在准静态压缩下,连接纤维帽和容器的细胞壁会耗散更多的能量。观察到光纤帽在高速冲击下的塑料能量耗散中的主要作用。并且径向布置的纤维帽还允许手掌组织在液压压力下改善其切线机械性能。 (C)2014 Elsevier Ltd.保留所有权利。

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